US12556107B2 - Method for supplying a DC load, energy conversion system and electrolysis system - Google Patents
Method for supplying a DC load, energy conversion system and electrolysis systemInfo
- Publication number
- US12556107B2 US12556107B2 US17/876,664 US202217876664A US12556107B2 US 12556107 B2 US12556107 B2 US 12556107B2 US 202217876664 A US202217876664 A US 202217876664A US 12556107 B2 US12556107 B2 US 12556107B2
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- Prior art keywords
- load
- rectifier
- voltage
- input
- energy conversion
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Classifications
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- H—ELECTRICITY
- H02—GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
- H02M—APPARATUS FOR CONVERSION BETWEEN AC AND AC, BETWEEN AC AND DC, OR BETWEEN DC AND DC, AND FOR USE WITH MAINS OR SIMILAR POWER SUPPLY SYSTEMS; CONVERSION OF DC OR AC INPUT POWER INTO SURGE OUTPUT POWER; CONTROL OR REGULATION THEREOF
- H02M7/00—Conversion of AC power input into DC power output; Conversion of DC power input into AC power output
- H02M7/02—Conversion of AC power input into DC power output without possibility of reversal
- H02M7/04—Conversion of AC power input into DC power output without possibility of reversal by static converters
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- H—ELECTRICITY
- H02—GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
- H02J—ELECTRIC POWER NETWORKS; CIRCUIT ARRANGEMENTS OR SYSTEMS FOR SUPPLYING OR DISTRIBUTING ELECTRIC POWER; SYSTEMS FOR STORING ELECTRIC ENERGY
- H02J4/00—Circuit arrangements for mains or distribution networks not specified as AC or DC; Circuit arrangements for mains or distribution networks combining AC and DC sections or sub-networks
- H02J4/20—Networks integrating separated AC and DC power sections
- H02J4/25—Networks integrating separated AC and DC power sections for transfer of electric power between AC and DC networks, e.g. for supplying the DC section within a load from an AC mains system
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- H02J5/00—
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- H—ELECTRICITY
- H02—GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
- H02J—ELECTRIC POWER NETWORKS; CIRCUIT ARRANGEMENTS OR SYSTEMS FOR SUPPLYING OR DISTRIBUTING ELECTRIC POWER; SYSTEMS FOR STORING ELECTRIC ENERGY
- H02J50/00—Circuit arrangements or systems for wireless supply or distribution of electric power
- H02J50/10—Circuit arrangements or systems for wireless supply or distribution of electric power using inductive coupling
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- H—ELECTRICITY
- H02—GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
- H02J—ELECTRIC POWER NETWORKS; CIRCUIT ARRANGEMENTS OR SYSTEMS FOR SUPPLYING OR DISTRIBUTING ELECTRIC POWER; SYSTEMS FOR STORING ELECTRIC ENERGY
- H02J50/00—Circuit arrangements or systems for wireless supply or distribution of electric power
- H02J50/80—Circuit arrangements or systems for wireless supply or distribution of electric power involving the exchange of data, concerning supply or distribution of electric power, between transmitting devices and receiving devices
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- H—ELECTRICITY
- H02—GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
- H02M—APPARATUS FOR CONVERSION BETWEEN AC AND AC, BETWEEN AC AND DC, OR BETWEEN DC AND DC, AND FOR USE WITH MAINS OR SIMILAR POWER SUPPLY SYSTEMS; CONVERSION OF DC OR AC INPUT POWER INTO SURGE OUTPUT POWER; CONTROL OR REGULATION THEREOF
- H02M7/00—Conversion of AC power input into DC power output; Conversion of DC power input into AC power output
- H02M7/02—Conversion of AC power input into DC power output without possibility of reversal
- H02M7/04—Conversion of AC power input into DC power output without possibility of reversal by static converters
- H02M7/06—Conversion of AC power input into DC power output without possibility of reversal by static converters using discharge tubes without control electrode or semiconductor devices without control electrode
- H02M7/08—Conversion of AC power input into DC power output without possibility of reversal by static converters using discharge tubes without control electrode or semiconductor devices without control electrode arranged for operation in parallel
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- C—CHEMISTRY; METALLURGY
- C25—ELECTROLYTIC OR ELECTROPHORETIC PROCESSES; APPARATUS THEREFOR
- C25B—ELECTROLYTIC OR ELECTROPHORETIC PROCESSES FOR THE PRODUCTION OF COMPOUNDS OR NON-METALS; APPARATUS THEREFOR
- C25B9/00—Cells or assemblies of cells; Constructional parts of cells; Assemblies of constructional parts, e.g. electrode-diaphragm assemblies; Process-related cell features
- C25B9/60—Constructional parts of cells
- C25B9/65—Means for supplying current; Electrode connections; Electric inter-cell connections
Definitions
- the disclosure relates to a method for supplying power to a DC load from an AC grid using an energy conversion system comprising a transformer system and two rectifiers.
- the disclosure furthermore relates to an energy conversion system comprising two rectifiers configured to supply power to a DC load from an AC grid, and an electrolysis system having such an energy conversion system, and an electrolyzer as DC load.
- electrolyzers with rated powers in the single-digit to two-digit MW range can be supplied power in each case via a plurality of rectifiers from an AC grid.
- a production rate of the electrolysis products, and therefore a power consumption of the electrolyzer is controlled via a level of its input voltage, wherein the power consumption generally increases as the input voltage increases.
- an initial working range of an electrolyzer in its new state can shift over the course of its operating duration, for example, as a result of degradation processes.
- the initial working range can shift, for example, overall toward higher input voltages.
- the electrolysis process has as high an efficiency as possible in relation to the electrical energy used. It follows from this that an adjustment of the respective input voltage in the entire working range of the electrolyzer should take place with as few conversion losses as possible.
- operation of the electrolysis method, and the energy conversion system itself should be as inexpensive as possible.
- the single-stage rectifiers in question here can be actively controllable single-stage rectifiers which have a bridge circuit comprising transistors and freewheeling diodes.
- a DC voltage U DC at the output of the bridge circuit present in the rectifier across the freewheeling diodes thereof is downwardly limited.
- the DC voltage U DC at the output of an AC-DC converter assigned to the rectifier cannot fall below a specific minimum value. In this case, the minimum value is dependent on an amplitude ⁇ of the AC voltage present at the input of the AC-DC converter.
- the transformer needs to be configured so that the minimum value of the DC voltage U DC generated on the output side at the AC-DC converter does not exceed the minimum input voltage U min of the electrolyzer, since otherwise a range of the input voltage of the electrolyzer as DC load would exist which cannot be set via the single-stage rectifiers. This can cause high switch-on currents when the rectifiers are connected to the DC load.
- Document GB 778,989 A discloses an electrolysis system comprising a plurality of electrolysis units that is supplied power in each case via a dedicated polyphase rectifier, in each case by a separate group of a plurality of groups of secondary windings of a transformer.
- the transformer also has a star-connected and a delta-connected group of primary windings.
- the secondary windings which can be present in three-phase or four-phase groups, are phase-shifted relative to one another.
- Document DE 10 2014 014091 A1 discloses a method for operating an electrolyzer in which a voltage supply to the electrolyzer takes place via an AC voltage which is rectified by means of a rectifier, and in particular is three-phase.
- the voltage applied to the electrolyzer is set by means of a voltage controller, which is at least partially decoupled from the rectifier.
- Document GB 2 238 635 B discloses a current source, which is configured to provide a constant DC output voltage, wherein it is supplied an AC input voltage which is within an AC voltage input range.
- the current source comprises a transformer that provides a number of outputs having a different voltage that are each proportional to the input voltage. Each output is rectified and is in the form of a series circuit comprising a voltage regulator without capacitive smoothing. The outputs of each voltage regulator are connected to a common output at which the constant DC voltage is output.
- Document EP 2228894 A1 describes a rectifier comprising a rectifier circuit for providing a rectified intermediate voltage from a plurality of phase voltages of a polyphase system, and a DC-DC converter circuit for generating a preset output voltage from the intermediate voltage.
- the DC-DC converter circuit is designed to provide three different converter voltages depending on a switching state and to output the output voltage by successive selection of at least two of the three converter voltages in accordance with a clocked operating mode.
- Document EP 3379679 A1 discloses an energy supply system for grid supply and grid energy regeneration, having a voltage conversion means, an active, regenerative rectifier and a line-commutated rectifier.
- the voltage conversion means is electrically connected to an AC grid and to the active, regenerative rectifier and/or to the line-commutated rectifier.
- the active, regenerative rectifier is electrically connected on the input side to the AC grid so that, during operation, a first AC voltage is present
- the line-commutated rectifier is electrically connected on the input side to the AC grid so that, during operation, a second AC voltage is present.
- the active, regenerative rectifier and the line-commutated rectifier are each electrically connected to a DC grid.
- the voltage conversion means is designed so that, during operation, the first AC voltage is lower than the second AC voltage.
- the disclosure is directed to a method for supplying power to a DC load using an energy conversion system connected on the input side to an AC grid and having at least two rectifiers, for example, single-stage rectifiers, in which a consumption of the DC load can be regulated continuously via an input voltage present at the DC load in an entire working range assigned to the DC load for the input voltage.
- a voltage range which is inaccessible to an input voltage should be avoided, but at the same time a high consumption of the DC load with as high an efficiency as possible, for example, as few conversion losses of the energy conversion system as possible, should also take place.
- the disclosure is also directed to an energy conversion system which is suitable for performing the method and also an electrolysis system having such an energy conversion system.
- the method according to the disclosure is aimed at supplying power to a DC load using an energy conversion system, wherein the energy conversion system comprises a first rectifier, a second rectifier, and a transformer system.
- Each of the rectifiers comprises an AC-DC converter and is connected to an AC grid via a separate secondary side of the transformer system.
- the transformer system is configured in one embodiment to provide a first AC voltage having a first voltage amplitude ⁇ 1 on the first secondary side and a second AC voltage having a second voltage amplitude ⁇ 2 on the second secondary side.
- a value of the second voltage amplitude ⁇ 2 exceeds a corresponding value of the first voltage amplitude ⁇ 1 .
- the method also comprises, when the input voltage U DC,load at the input of the DC load reaches or exceeds the voltage threshold value U TH , operating the second rectifier with a second non-zero power flow P 2 to supply power to the DC load.
- Each of the two rectifiers can be in the form of a so-called single-stage rectifier.
- a single-stage rectifier in the context of the disclosure should be understood such that it is free of a DC-DC converter connected downstream of the AC-DC converter.
- each of the rectifiers can be in the form of an actively controllable rectifier, which has a bridge circuit comprising transistors. These may be transistors of the type IGBT (Insulated-Gate Bipolar Transistor) or MOSFET (Metal-Oxide-Semiconductor Field-Effect Transistor). Within the bridge circuit, the transistors can each have a freewheeling diode connected in parallel with power terminals of the corresponding transistor.
- IGBT Insulated-Gate Bipolar Transistor
- MOSFET Metal-Oxide-Semiconductor Field-Effect Transistor
- the freewheeling diode may be an intrinsic freewheeling diode of the corresponding transistor or a diode which is separate relative to the corresponding transistor.
- each of the power flows P 1 , P 2 if it flows from the AC grid in the direction of the DC load, is described or treated as a power flow with a positive mathematical sign.
- each of the power flows P 1 , P 2 if it flows from the DC load in the direction of the AC grid, is described or treated as a power flow with a negative mathematical sign.
- the first rectifier can be operated for supplying power to the DC load with a positive first non-zero power flow P 1 (P 1 >0).
- the second rectifier can be operated for supplying power to the DC load with a positive second non-zero power flow P 2 (P 2 >0).
- the transformer system has at least two separate secondary sides, wherein each of the secondary sides has a different transformation ratio with respect to the respectively assigned primary side of the transformer system.
- An AC voltage of the AC grid is transformed to AC voltages having different amplitudes via the two different secondary sides. Specifically, the transformation takes place in such a way that an AC voltage having a first amplitude ⁇ 1 is generated on the first secondary side and an AC voltage having a greater second amplitude ⁇ 2 , relative to the first amplitude ⁇ 1 , is generated on the second secondary side.
- Each of the two AC voltages acts as the input voltage for in each case one of the two rectifiers.
- the AC voltage having the first amplitude ⁇ 1 is supplied to the first rectifier, and the AC voltage having the second amplitude ⁇ 2 is supplied to the second rectifier as the input voltage.
- Different values for the minimum DC voltages at the output of the AC-DC converters assigned to the respective rectifiers result from the two different AC voltages.
- the rectifiers are in the form of single-stage rectifiers, i.e., if no DC-DC converter is connected downstream of the AC-DC converter in each of the rectifiers, the DC voltage at the output of the AC-DC converter also corresponds to the output voltage of the respective rectifier.
- operation of the energy conversion system occurs so that, in a state in which an input voltage U DC,load at the input of the DC load falls below a threshold value U TH , the DC load is supplied power by the first power flow P 1 through the first rectifier.
- the second power flow P 2 through the second rectifier is suppressed.
- a second non-zero power flow P 2 through the second rectifier is made possible—and therefore contributes to the power supply to the DC load—when the input voltage U DC,load at the input of the DC load corresponds to the threshold value U TH or exceeds the threshold value U TH .
- the first power flow P 1 can be both suppressed and enabled.
- the DC load in the case of voltages at its input that are greater than or equal to the threshold value U TH , can be supplied power by the second power flow P 2 , or by a combination of the first power flow P 1 with the second power flow P 2 .
- the entire working range of the DC load is split into a lower range and an upper range using the voltage threshold value U TH .
- a consumption of the DC load is generally still so small that it can be covered by the first power flow P 1 of the first rectifier alone.
- the first amplitude ⁇ 1 of the AC voltage on the first secondary side is in this case selected such that each voltage value in the lower range of the working range assigned to the DC load can also be reached by the first rectifier. Therefore, a continuous regulation of the DC load down to a minimum input voltage U min assigned to the DC load is ensured via the first rectifier.
- the second rectifier has an AC voltage having a second amplitude ⁇ 2 which is higher relative to the first amplitude ⁇ 1 , a ratio of the input voltage U DC,load of the DC load in the upper range of the working range assigned to the DC load is lower for the second rectifier than for the first rectifier. Therefore, when the second power flow P 2 takes place, the conversion losses of the second rectifier are also lower than those of the first rectifier, as a result of which the second rectifier can operate more efficiently. Therefore, a high consumption of the DC load using the second rectifier can take place in the upper range overall with as high an efficiency as possible and therefore low conversion losses.
- the conversion losses are at least lower relative to a state in which a value for the first amplitude corresponds to a value for the second amplitude.
- different transformation ratios of the two secondary sides relative to the primary side assigned to the respective secondary side can be realized with little complexity and at low cost.
- the rectifiers generally have an AC disconnecting circuit assigned to an input of the rectifier for disconnecting or for connecting an input of the AC-DC converter from or to the AC grid.
- they generally have in any case a DC disconnecting circuit, which is arranged between the output of the AC-DC converter and the output of the rectifier and/or the input of the DC load. Therefore, the second power flow P 2 through the second rectifier can be suppressed in a simple manner by an open AC disconnecting circuit between the second secondary side of the transformer system and the AC-DC converter of the second rectifier.
- it can likewise be suppressed by the DC disconnecting circuit arranged between the AC-DC converter of the second rectifier and the input of the DC load.
- the same applies accordingly likewise to a suppression of the first power flow P 1 through the first rectifier, in this case using an AC disconnecting circuit and/or DC disconnecting circuit assigned to the first rectifier.
- the DC load can have a monotonously rising, for example, a strictly monotonously rising power/voltage (PU) characteristic, which means that a consumption of the DC load increases as the input voltage of the DC load increases.
- PU power/voltage
- the power flow taking place overall via the two rectifiers from the AC grid in the direction of the DC load increases as the input voltage of the DC load increases.
- the power flow taking place overall via the two rectifiers from the AC grid toward the DC load results from the sum of the first power flow P 1 taking place via the first rectifier and the second power flow P 2 taking place via the second rectifier.
- the input voltage of the DC load also corresponds to that DC voltage which prevails at the output of the AC-DC converter assigned to the respective rectifier.
- method acts i), ii) can be run through in an order such that method act i) follows on temporally from method act ii).
- method acts i) and ii) can be repeated temporally.
- temporally repeated checking of the input voltage U DC,load relative to the voltage threshold value U TH a change in the consumption of the DC load can be tracked and responded to using the control circuit.
- the method can be used in the context of a startup procedure for supplying power to the DC load using the energy conversion system.
- both the first power flow P 1 and the second power flow P 2 of the energy conversion system are suppressed, for example by open DC disconnecting circuits of the two rectifiers.
- first amplitude ⁇ 1 and second amplitude ⁇ 2 are suppressed, for example by open DC disconnecting circuits of the two rectifiers.
- different DC voltages U DC,1 , U DC,2 are set at the outputs of the two AC-DC converters.
- a load-free connection, or a virtually load-free connection, of the first rectifier to the DC load can take place by closing the DC disconnecting circuit of the first rectifier since the DC voltage at the output of the AC-DC converter assigned to the first rectifier does not exceed the minimum input voltage U min of the DC load.
- the method can also be used in the context of a shutdown procedure during the power supply to the DC load using the energy conversion system.
- the energy conversion system is advantageously intended to be disconnected from the DC load in load-free fashion. In this case, starting from a state in which the DC load is supplied power exclusively by the first power flow P 1 , the input voltage of the DC load U DC,load is reduced down to the minimum input voltage U min of the DC load.
- a ratio of the first power flow P 1 to the second power flow P 2 in accordance with P 1 /P 2 for supplying power to the DC load can be minimized as far as possible and can optionally be 0, so that the efficiency of the AC-DC conversion is optimized.
- the ratio of the first power flow P 1 to the second power flow P 2 can be reduced further as long as the consumption of the DC load does not exceed a nominal power of the second rectifier.
- the system further comprises a first rectifier and a second rectifier, which are connected on their respective input side, i.e. on their respective AC-side, in each case to one of the two secondary sides of the transformer system and are each connectable on their respective output side, i.e.
- the energy conversion system in conjunction with the control circuit, optionally in combination with further components of the energy conversion system, is configured, in one embodiment, to perform the various methods according to the disclosure.
- the transformer system can comprise at least two separate transformers, wherein the first transformer comprises a first primary side and the first secondary side coupled inductively thereto, and wherein the second transformer comprises a second primary side, that is different than the first primary side, and the second secondary side inductively coupled thereto.
- the transformer system it is possible for the transformer system to have only one primary side, that is inductively coupled both to the first secondary side and to the second secondary side.
- the transformer system of the energy conversion system can comprise a plurality of taps for varying the first amplitude ⁇ 1 and/or the second amplitude ⁇ 2 relative to an amplitude of the AC voltage of the AC grid.
- the taps can be arranged on this primary side.
- the plurality of taps can be arranged on at least one of the first primary side and the second primary side. As an alternative or in addition, however, they can also be arranged on at least one of the two secondary sides.
- the first amplitude ⁇ 1 and/or the second amplitude ⁇ 2 can be altered using the presently selected tap either manually or automatically using the control circuit.
- a transformation ratio and therefore the AC voltages present on the respective secondary sides of a drift in the input voltage of the DC load taking place over the course of time can be adapted via the plurality of taps.
- a measurement device configured to detect a first DC voltage U DC,1 or a second DC voltage U DC,2 at the outputs of the corresponding AC-DC converter is provided in any case in the case of the rectifiers for regulation purposes during their operation.
- the first DC voltage U DC,1 at the output of the AC-DC converter assigned to the first rectifier corresponds to the input voltage of the DC load.
- the second DC voltage U DC,2 at the output of the AC-DC converter assigned to the second rectifier when the DC disconnecting circuit of the second rectifier is closed.
- the energy conversion system can therefore, as an alternative or in addition thereto, comprise a measurement device connected to the control circuit for detecting the input voltage U DC,load present at the input of the DC load.
- the energy conversion system can comprise two multistage rectifiers, in which in each case one DC-DC converter is arranged between the AC-DC converter and the output of each rectifier.
- the first rectifier and/or the second rectifier can comprise a single-stage rectifier.
- a single-stage rectifier is free from a DC-DC converter arranged between the AC-DC converter and the output of the rectifier.
- the first rectifier and/or the second rectifier can be configured and set up for a bidirectional power flow.
- the energy conversion system can render grid services in favor of the AC grid.
- grid services can include, for example, power factor correction of the AC grid.
- An electrolysis system comprises an energy conversion system according to the disclosure and an electrolyzer as DC load.
- FIG. 1 shows an embodiment of an energy conversion system which is connected on the input side to an AC grid and on the output side to a DC load;
- FIG. 2 a flowchart of the method according to the disclosure in one embodiment.
- FIG. 1 illustrates an embodiment of an energy conversion system 1 according to the disclosure, which is connected on the input side to an AC grid 20 and on the output side to an input 32 of a DC load 30 .
- the DC load 30 is illustrated as an electrolyzer 31 .
- the energy conversion system 1 contains a transformer system 21 , a first rectifier 2 . 1 , a second rectifier 2 . 2 , a control circuit 15 that is configured to control the first rectifier 2 . 1 and the second rectifier 2 . 2 and a measurement circuit or device 13 , that is connected to the control circuit 15 for the purpose of control and for data interchange.
- the measurement device 13 is configured to measure an input voltage U DC,load present at the input 32 of the DC load 30 .
- the transformer system 21 comprises two separately formed transformers 22 . 1 , 22 . 2 , which each have a primary side 23 . 1 , 23 . 2 and a secondary side 24 . 1 , 24 . 2 .
- the primary sides 23 . 1 , 23 . 2 of the transformers 22 . 1 , 22 . 2 are connected in parallel with one another to the AC grid 20 .
- the first secondary side 24 . 1 is connected to the AC input 5 (a first AC input) of the first rectifier 2 . 1
- the second secondary side 24 . 2 is connected to the AC input 5 (a second AC input) of the second rectifier 2 . 2 .
- the transformer system 21 is configured, via a corresponding turns ratio of the first secondary side 24 . 1 to the first primary side 23 .
- the polyphase AC voltage of the AC grid 20 having the amplitude ⁇ AC into a first AC voltage, which is present on the first secondary side 24 . 1 and has the first amplitude ⁇ 1 and the same number of phases.
- the polyphase AC voltage of the AC grid 20 having the amplitude ⁇ AC is transformed into a second AC voltage, which is present on the second secondary side 24 . 2 and has the second amplitude ⁇ 2 and the same number of phases.
- a value for the second amplitude ⁇ 2 exceeds a corresponding value for the first amplitude ⁇ 1 .
- Each of the rectifiers 2 .
- the DC disconnecting circuit 12 is configured to connect and disconnect an output of the AC-DC converter 10 , i.e. a DC side of the AC-DC converter, to and from the DC output 3 of the rectifier 2 . 1 , 2 . 2 and therefore to and from the input 32 of the DC load 30 .
- the AC disconnecting circuit 6 is configured to disconnect and connect the respective secondary side 24 . 1 , 24 .
- the AC disconnecting circuit 6 can additionally optionally be configured to limit a current during precharging of the output capacitance 11 of the rectifier 2 . 1 , 2 . 2 .
- the AC disconnecting circuit 6 contains two parallel current paths each having a switch 8 , wherein a series resistor 7 for current limitation is arranged in one of the two current paths.
- the reference symbols relating to the components of the rectifiers 2 . 1 , 2 . 2 are only illustrated in the case of the first rectifier 2 . 1 in FIG. 1 .
- a value for the second DC voltage U DC,2 of the second rectifier 2 . 2 exceeds a value for the first DC voltage U DC,1 of the first rectifier 2 . 1 owing to the different AC voltages present at the inputs 5 of the rectifiers 2 . 1 , 2 . 2 , in particular their amplitudes ⁇ 1 , ⁇ 2 .
- the power flows P 1 , P 2 through the respective rectifiers 2 . 1 , 2 . 2 are now suppressed or enabled.
- first the first power flow P 1 through the first rectifier 2 . 1 can be enabled by closing the DC disconnecting circuit 12 of the first rectifier 2 . 1 , while the second power flow P 2 through the second rectifier 2 . 2 is still suppressed.
- the second power flow P 2 through the second rectifier 2 . 2 is enabled when, e.g.
- the consumption of said DC load is increased, for example, when the input voltage U DC,load of the DC load 30 reaches or exceeds a voltage threshold value U TH .
- a voltage threshold value U TH In the case of input voltages U DC,load of the DC load 30 which are greater than the voltage threshold value U TH , it is possible, depending on the consumption of the DC load 30 and on rated powers of the rectifiers 2 . 1 , 2 . 2 , for the DC load 30 to be supplied power only by the second power flow P 2 or by a combination of the first power flow P 1 and the second power flow P 2 .
- the AC grid 20 is illustrated, by way of example, as a three-phase AC grid 20 and therefore also the rectifiers 2 . 1 , 2 . 2 are illustrated with an input 5 configured with three phases.
- the transformer system 21 is configured to transform the three-phase AC voltage of the AC grid 20 into a three-phase first AC voltage and a three-phase second AC voltage. In the context of the disclosure, however, other numbers of phases are also possible.
- the AC grid can also be configured as a single-phase AC grid 20 , the transformer system 21 as a single-phase transformer system 21 and/or the inputs 5 of the rectifiers 2 . 1 , 2 . 2 as single-phase inputs 5 .
- the AC grid 20 , the transformer system 21 and/or the inputs of the rectifiers can also be configured to have a plurality of phases, wherein the number of phases is different than three.
- the rectifiers 2 . 1 , 2 . 2 can have further components which are not explicitly illustrated in FIG. 1 , for example measurement devices for measuring current and/or voltage at the input and/or output of the AC-DC converters 10 or a communications circuit.
- FIG. 2 illustrates a flowchart of an embodiment of the method according to the disclosure, as can be implemented using the energy conversion system 1 from FIG. 1 .
- the method starts with a first act S 1 , in which an input voltage U DC,load present at the input 32 of the DC load 30 is detected, for example, via the measurement device 13 and passed on to the control circuit 15 .
- the first act S 1 is, however, only optional, which is illustrated in the flowchart via a dashed frame line.
- the input voltage U DC,load can be known to the control circuit 15 by other means, for example, because specific DC voltages U DC,1 , U DC,2 at the output of the AC-DC converter(s) 10 are preset by the control circuit 15 , and at least one of the DC disconnecting circuits 12 is closed.
- the first act S 1 is not required.
- the control circuit 15 compares a value for the detected input voltage U DC,load with a predefined voltage threshold value U TH .
- the method branches to a fifth act S 5 , in which the first power flow P 1 through the first rectifier 2 .
- the suppression of the second power flow P 2 can take place, for example, by opening the DC disconnecting circuit 12 of the second rectifier 2 . 2 .
- the DC load 30 is therefore supplied power by the first power flow P 1 of the first rectifier 2 . 1 . If, on the other hand, the detected input voltage U DC,load of the DC load 30 is greater than or equal to the voltage threshold value U TH , the method branches from the second act S 2 to a third act S 3 , in which the second power flow P 2 through the second rectifier 2 . 2 is enabled, for example, by closing of the corresponding DC disconnecting circuit 12 .
- a ratio of the first power flow P 1 to the second power flow P 2 can be minimized in order to operate the energy conversion system 1 overall with as high an efficiency as possible and low power losses.
- the fourth act S 4 is, however, again optional and not absolutely necessary, which is again characterized via a dashed frame line.
- a check is performed to ascertain whether a predefined termination condition has been met. If this is not the case, the method jumps back to the first act S 1 . If, on the other hand, the termination condition is met, the method ends.
- the sixth act S 6 which, depending on which branch is run through in response to the query in the second method act S 2 , follows on from the fifth act S 5 or the fourth act S 4 , is also an optional method act and is therefore illustrated by dashed lines in the flowchart. In an embodiment in which the sixth act S 6 is not provided, the method can jump back to the first act directly after the fifth act S 5 or after the fourth act S 4 .
- a specific consumption or a consumption/time profile of the DC load it is possible for a specific consumption or a consumption/time profile of the DC load to be set and tracked by means of the control circuit 15 .
- the first rectifier 2 . 1 is driven, via the control circuit 15 , to temporarily increase its first DC voltage U DC,1 present at the output capacitance 11 .
- the DC disconnecting circuit 12 of the first rectifier 2 . 1 is closed, this voltage is also present as input voltage U DC,load at the input 32 of the DC load 30 .
- the second rectifier 2 . 2 the same applies accordingly also to the second rectifier 2 . 2 .
- the second rectifier 2 . 2 is also driven at the same time as the first rectifier 2 . 1 , via the control circuit 15 , with the aim of temporarily increasing its second DC voltage U DC,2 present at its output capacitance 11 .
- values for the first DC voltage U DC,1, the second DC voltage U DC,2 and the input voltage U DC,load of the DC load 30 are virtually identical.
- a variation in the first power flow P 1 relative to the second power flow P 2 of the combination can take place using the control circuit 15 by virtue of the control circuit correspondingly driving the semiconductor switches of the first rectifier 2 . 1 and the second rectifier 2 . 2 , for example, the semiconductor switches assigned to the AC-DC converters thereof.
- the values of the DC voltages U DC,1 U DC,2 present at the output capacitances 11 of the respective rectifiers 2 . 1 , 2 . 2 can be varied slightly with respect to one another via the corresponding driving of the semiconductor switches, and thereby establish the variation in the power flows.
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- Engineering & Computer Science (AREA)
- Power Engineering (AREA)
- Computer Networks & Wireless Communication (AREA)
- Rectifiers (AREA)
- Direct Current Feeding And Distribution (AREA)
- Chemical & Material Sciences (AREA)
- Chemical Kinetics & Catalysis (AREA)
- Electrochemistry (AREA)
- Materials Engineering (AREA)
- Metallurgy (AREA)
- Organic Chemistry (AREA)
Abstract
Description
Claims (16)
Applications Claiming Priority (3)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| DE102020103076.2 | 2020-02-06 | ||
| DE102020103076.2A DE102020103076A1 (en) | 2020-02-06 | 2020-02-06 | METHOD OF SUPPLYING A DC LOAD, ENERGY CONVERSION PLANT AND ELECTROLYSIS PLANT |
| PCT/EP2020/087295 WO2021155989A1 (en) | 2020-02-06 | 2020-12-18 | Method for supplying a dc load, energy conversion system and electrolysis system |
Related Parent Applications (1)
| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| PCT/EP2020/087295 Continuation WO2021155989A1 (en) | 2020-02-06 | 2020-12-18 | Method for supplying a dc load, energy conversion system and electrolysis system |
Publications (2)
| Publication Number | Publication Date |
|---|---|
| US20220368243A1 US20220368243A1 (en) | 2022-11-17 |
| US12556107B2 true US12556107B2 (en) | 2026-02-17 |
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| US17/876,664 Active 2042-07-23 US12556107B2 (en) | 2020-02-06 | 2022-07-29 | Method for supplying a DC load, energy conversion system and electrolysis system |
Country Status (6)
| Country | Link |
|---|---|
| US (1) | US12556107B2 (en) |
| EP (1) | EP4101063A1 (en) |
| JP (1) | JP2023513125A (en) |
| CN (1) | CN115053445A (en) |
| DE (1) | DE102020103076A1 (en) |
| WO (1) | WO2021155989A1 (en) |
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|---|---|---|---|---|
| DE102022204401A1 (en) | 2022-05-04 | 2023-11-09 | Siemens Energy Global GmbH & Co. KG | Electrolysis system and system network comprising an electrolysis system and a renewable energy system |
| DE102022111107B4 (en) * | 2022-05-05 | 2023-11-16 | Sma Solar Technology Ag | Energy supply device for an electrolysis unit and electrolysis system |
| AT526361B1 (en) * | 2022-12-21 | 2024-02-15 | Andritz Ag Maschf | Controllable rectifier arrangement for hydrogen electrolysis |
| CN118264131A (en) * | 2022-12-28 | 2024-06-28 | 台达电子工业股份有限公司 | Medium voltage power conversion system and distributed medium voltage power conversion system |
| WO2025038437A2 (en) * | 2023-08-11 | 2025-02-20 | Electric Hydrogen Co. | Power converter optimization |
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-
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- 2020-02-06 DE DE102020103076.2A patent/DE102020103076A1/en active Pending
- 2020-12-18 JP JP2022547209A patent/JP2023513125A/en active Pending
- 2020-12-18 WO PCT/EP2020/087295 patent/WO2021155989A1/en not_active Ceased
- 2020-12-18 EP EP20838063.4A patent/EP4101063A1/en active Pending
- 2020-12-18 CN CN202080095586.8A patent/CN115053445A/en active Pending
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Also Published As
| Publication number | Publication date |
|---|---|
| US20220368243A1 (en) | 2022-11-17 |
| WO2021155989A1 (en) | 2021-08-12 |
| DE102020103076A1 (en) | 2021-08-12 |
| JP2023513125A (en) | 2023-03-30 |
| EP4101063A1 (en) | 2022-12-14 |
| CN115053445A (en) | 2022-09-13 |
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